| Tag |
First Indicator |
Second Indicator |
Subfields |
| LEADER |
00000cam a2200000 a 4500 |
| 001 |
in00005772513 |
| 005 |
20260327175132.3 |
| 006 |
m o d |
| 007 |
cr cnu|||||||| |
| 008 |
231104s2023 cau o 000 0 eng d |
| 040 |
|
|
|a EBLCP
|b eng
|c EBLCP
|d YDX
|d OCLCQ
|d OPELS
|d OCLCO
|d OCLCQ
|d OCLCL
|d OCLCQ
|
| 019 |
|
|
|a 1407025873
|
| 020 |
|
|
|a 9780443218989
|
| 020 |
|
|
|a 0443218986
|
| 020 |
|
|
|z 9780443218972
|
| 020 |
|
|
|z 0443218978
|
| 035 |
|
|
|a (OCoLC)1407313898
|z (OCoLC)1407025873
|
| 050 |
|
4 |
|a TA410
|
| 082 |
0 |
4 |
|a 620.110287
|
| 049 |
|
|
|a TXAM
|
| 100 |
1 |
|
|a Sun, Wei.
|
| 245 |
1 |
0 |
|a High Temperature Miniature Specimen Test Methods.
|
| 260 |
|
|
|a San Diego :
|b Elsevier,
|c 2023.
|
| 300 |
|
|
|a 1 online resource (288 p.)
|
| 336 |
|
|
|a text
|b txt
|2 rdacontent
|
| 337 |
|
|
|a computer
|b c
|2 rdamedia
|
| 338 |
|
|
|a online resource
|b cr
|2 rdacarrier
|
| 500 |
|
|
|a Description based upon print version of record.
|
| 505 |
0 |
|
|a Front Cover -- High Temperature Miniature Specimen Test Methods -- High Temperature Miniature Specimen Test Methods -- Copyright -- Contents -- About the authors -- Foreword -- 1 -- Introduction -- 1.1 Conventional creep test specimen requirements -- 1.1.1 Full-size cylindrical uniaxial specimen test -- 1.1.2 Subsize cylindrical uniaxial specimen test -- 1.2 Need to extract material properties from small volume of material -- 1.3 Requirements for material evaluation and structural integrity -- 1.3.1 General background -- 1.3.2 Fusion materials -- 1.3.3 Condition monitoring and life management
|
| 505 |
8 |
|
|a 1.3.4 Gas turbine blades -- 1.4 Scope of the book -- References -- 2 -- Basic material behavior models for creep and viscoplasticity -- 2.1 Introduction -- 2.2 Norton power law secondary creep model -- 2.2.1 The model -- 2.2.2 Estimating material constants -- 2.3 Creep damage mechanics models -- 2.3.1 The models -- 2.3.1.1 Kachanov creep damage model -- 2.3.1.2 Liu and Murakami creep damage model -- 2.3.1.3 Three-parameter creep damage (Dyson) model -- 2.3.2 Estimating material constants -- 2.3.2.1 Experimental data -- 2.3.2.2 Parameter identification -- 2.3.2.3 Model calibration
|
| 505 |
8 |
|
|a 2.4 Unified viscoplasticity model -- 2.4.1 The basic model -- 2.4.2 Estimating material constants -- 2.4.2.1 Experimental data -- 2.4.2.2 Parameter identification -- 2.4.2.3 Model calibration -- 2.5 Other models -- Nomenclature -- References -- Further reading -- 3 -- Small punch test -- 3.1 Background and test standards -- 3.1.1 Background -- 3.1.2 Test standards -- 3.2 Small punch tensile test -- 3.2.1 Data interpretation method -- 3.2.1.1 Force-deflection curve parameters -- 3.2.1.2 Empirical correlations of yield stress and ultimate tensile strength -- 3.2.1.3 Determination of Fe
|
| 505 |
8 |
|
|a 3.2.2 Typical test data -- 3.3 Small punch creep test -- 3.3.1 Data interpretation method -- 3.3.2 Typical test data -- 3.4 Practical applications, complexities, and limitations -- 3.4.1 Practical applications -- 3.4.2 Complexities -- 3.4.2.1 Stress states -- 3.4.2.2 Effect of friction -- 3.4.2.3 Effect of initial plasticity straining -- 3.4.2.4 Effect of clamping and constant volume -- 3.4.3 Limitations -- Nomenclature -- Appendix 3.1 Summary of Chakrabarty's membrane stretching theory -- Appendix 3.2 Cone model for equivalent stress and punch displacement
|
| 505 |
8 |
|
|a Appendix 3.3 Membrane stretching-based creep damage analytical solutions -- A3.3.1 Creep damage constitutive equations -- A3.3.2 Stresses -- A3.3.3 Creep damage evolution and failure life -- A3.3.4 Punch displacement and minimum displacement rate -- Strain energy formulations -- Punch displacement-time solution -- Minimum displacement rate -- References -- 4 -- Impression creep test with a rectangular indenter -- 4.1 Background -- 4.2 Data interpretation method -- 4.2.1 Data conversion of impression creep test -- 4.2.2 Reference stress method -- 4.2.3 Use of rectangular indenter
|
| 500 |
|
|
|a 4.2.4 Determination of conversion parameters
|
| 650 |
|
0 |
|a Materials
|x Testing.
|
| 650 |
|
0 |
|a Materials
|x Creep.
|
| 650 |
|
6 |
|a Matériaux
|x Essais.
|
| 650 |
|
6 |
|a Matériaux
|x Fluage.
|
| 650 |
|
7 |
|a creep.
|2 aat
|
| 655 |
|
7 |
|a Electronic books.
|2 local
|
| 700 |
1 |
|
|a Yue, Zhufeng.
|
| 700 |
1 |
|
|a Zhou, Guoyan.
|
| 700 |
1 |
|
|a Wen, Zhixun.
|
| 700 |
1 |
|
|a Li, Ming.
|
| 710 |
2 |
|
|a ScienceDirect (Online service)
|
| 776 |
0 |
8 |
|i Print version:
|a Sun, Wei
|t High Temperature Miniature Specimen Test Methods
|d San Diego : Elsevier,c2023
|z 9780443218972
|
| 856 |
4 |
0 |
|u http://proxy.library.tamu.edu/login?url=https://www.sciencedirect.com/science/book/9780443218972
|z Connect to the full text of this electronic book
|t 0
|
| 936 |
|
|
|a BATCHLOAD
|
| 955 |
|
|
|a Elsevier ScienceDirect 2026-2027
|
| 994 |
|
|
|a 92
|b TXA
|
| 999 |
f |
f |
|i 557ff6fe-14fe-4412-9838-cd3fd1aed50c
|s d81b1372-57e6-4cb8-9fc7-e4dc2df933fa
|t 0
|
| 952 |
f |
f |
|a Texas A&M University
|b College Station
|c Electronic Resources
|s www_evans
|d Available Online
|t 0
|e TA410
|h Library of Congress classification
|
| 998 |
f |
f |
|a TA410
|t 0
|l Available Online
|